The Geometry Effect of Cathode/Anode Areas Ratio on Electrochemical Performance of Button Fuel Cell Using Mixed Conducting Materials

Intermediate temperature (IT) fuel cells using mixed conducting materials have been reported by many researchers by adopting different compositions, microstructures, manufacture processes and testing conditions. Most iop-Vop relationships of these button electrochemical devices are experimentally ac...

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Main Authors: Daifen Chen, Biao Hu, Kai Ding, Cheng Yan, Liu Lu
Format: Article
Language:English
Published: MDPI AG 2018-07-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/11/7/1875
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author Daifen Chen
Biao Hu
Kai Ding
Cheng Yan
Liu Lu
author_facet Daifen Chen
Biao Hu
Kai Ding
Cheng Yan
Liu Lu
author_sort Daifen Chen
collection DOAJ
description Intermediate temperature (IT) fuel cells using mixed conducting materials have been reported by many researchers by adopting different compositions, microstructures, manufacture processes and testing conditions. Most iop-Vop relationships of these button electrochemical devices are experimentally achieved based on anode or cathode surface area (i.e., Aan≠Aca). In this paper, a 3D multi-physics model for a typical IT solid oxide fuel cell (SOFC) that carefully considers detail electrochemical reaction, electric leakage, and e−, ion and gas transporting coupling processes has been developed and verified to study the effect of Aca/Aan on button cell iop-Vop performance. The result shows that the over zone of the larger electrode can enhance charges and gas transport capacities within a limited scale of only 0.03 cm. The over electrode zone exceed this width would be inactive. Thus, the active zone of button fuel cell is restricted within the smaller electrode area min(Aan, Aca) due to the relative large disc radius and thin component layer. For a specified Vop, evaluating the responded iop by dividing output current Iop with min(Aan, Aca) for a larger value is reasonable to present real performance in the current device scale of cm. However, while the geometry of button cells or other electrochemical devices approach the scale less than 100 μm, the effect of over electrode zone on electrochemical performance should not be ignored.
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spelling doaj.art-b4255ec739ae484a95f0a5c05c7b98992022-12-22T04:23:13ZengMDPI AGEnergies1996-10732018-07-01117187510.3390/en11071875en11071875The Geometry Effect of Cathode/Anode Areas Ratio on Electrochemical Performance of Button Fuel Cell Using Mixed Conducting MaterialsDaifen Chen0Biao Hu1Kai Ding2Cheng Yan3Liu Lu4School of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, ChinaSchool of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, ChinaSchool of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, ChinaSchool of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, ChinaSchool of Mechanical Engineering, Jiangsu University, Zhenjiang 212013, ChinaIntermediate temperature (IT) fuel cells using mixed conducting materials have been reported by many researchers by adopting different compositions, microstructures, manufacture processes and testing conditions. Most iop-Vop relationships of these button electrochemical devices are experimentally achieved based on anode or cathode surface area (i.e., Aan≠Aca). In this paper, a 3D multi-physics model for a typical IT solid oxide fuel cell (SOFC) that carefully considers detail electrochemical reaction, electric leakage, and e−, ion and gas transporting coupling processes has been developed and verified to study the effect of Aca/Aan on button cell iop-Vop performance. The result shows that the over zone of the larger electrode can enhance charges and gas transport capacities within a limited scale of only 0.03 cm. The over electrode zone exceed this width would be inactive. Thus, the active zone of button fuel cell is restricted within the smaller electrode area min(Aan, Aca) due to the relative large disc radius and thin component layer. For a specified Vop, evaluating the responded iop by dividing output current Iop with min(Aan, Aca) for a larger value is reasonable to present real performance in the current device scale of cm. However, while the geometry of button cells or other electrochemical devices approach the scale less than 100 μm, the effect of over electrode zone on electrochemical performance should not be ignored.http://www.mdpi.com/1996-1073/11/7/1875electrode areas ratio effectelectrochemical performancemixed conducting materialmulti-physics numerical modeling
spellingShingle Daifen Chen
Biao Hu
Kai Ding
Cheng Yan
Liu Lu
The Geometry Effect of Cathode/Anode Areas Ratio on Electrochemical Performance of Button Fuel Cell Using Mixed Conducting Materials
Energies
electrode areas ratio effect
electrochemical performance
mixed conducting material
multi-physics numerical modeling
title The Geometry Effect of Cathode/Anode Areas Ratio on Electrochemical Performance of Button Fuel Cell Using Mixed Conducting Materials
title_full The Geometry Effect of Cathode/Anode Areas Ratio on Electrochemical Performance of Button Fuel Cell Using Mixed Conducting Materials
title_fullStr The Geometry Effect of Cathode/Anode Areas Ratio on Electrochemical Performance of Button Fuel Cell Using Mixed Conducting Materials
title_full_unstemmed The Geometry Effect of Cathode/Anode Areas Ratio on Electrochemical Performance of Button Fuel Cell Using Mixed Conducting Materials
title_short The Geometry Effect of Cathode/Anode Areas Ratio on Electrochemical Performance of Button Fuel Cell Using Mixed Conducting Materials
title_sort geometry effect of cathode anode areas ratio on electrochemical performance of button fuel cell using mixed conducting materials
topic electrode areas ratio effect
electrochemical performance
mixed conducting material
multi-physics numerical modeling
url http://www.mdpi.com/1996-1073/11/7/1875
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